A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media

Abstract Compositional gradient can be described as changes in the composition of components both vertically and horizontally in a hydrocarbon reservoir. In the present work, two-dimensional compositional gradient in multi-component gas and oil mixtures is modeled. A thermodynamic model is developed...

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Main Authors: Mahboobeh Kiani, Shahriar Osfouri, Reza Azin, Seyed Ail Mousavi Dehghani
Format: Article
Language:English
Published: SpringerOpen 2019-02-01
Series:Journal of Petroleum Exploration and Production Technology
Subjects:
Online Access:http://link.springer.com/article/10.1007/s13202-019-0624-y
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spelling doaj-9e8b83f9a9ec412fbd1cebf60d31ed062020-11-25T03:02:39ZengSpringerOpenJournal of Petroleum Exploration and Production Technology2190-05582190-05662019-02-01932221223410.1007/s13202-019-0624-yA comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous mediaMahboobeh Kiani0Shahriar Osfouri1Reza Azin2Seyed Ail Mousavi Dehghani3Department of Chemical Engineering, Faculty of Petroleum, Gas, and Petrochemical Engineering, Persian Gulf UniversityDepartment of Chemical Engineering, Faculty of Petroleum, Gas, and Petrochemical Engineering, Persian Gulf UniversityDepartment of Petroleum Engineering, Faculty of Petroleum, Gas, and Petrochemical Engineering, Persian Gulf UniversityResearch Institute of Petroleum IndustryAbstract Compositional gradient can be described as changes in the composition of components both vertically and horizontally in a hydrocarbon reservoir. In the present work, two-dimensional compositional gradient in multi-component gas and oil mixtures is modeled. A thermodynamic model is developed based on molecular diffusion coefficients in mass diffusive flux. A combination of Sigmund and Bird correlations is considered to estimate molecular diffusion coefficients for gas mixtures. Implementing this comprehensive developed model on a gas condensate sample shows interesting differences not only in trends of component compositions but also in gradient magnitude. A real set of data from a supergiant gas condensate field is used to validate the model. It is perceived that the developed model reduces relative absolute errors to about 50%. In the next step, a comprehensive study was conducted to understand the cross effects of molecular diffusion and natural convection in gas condensate and volatile oil samples. Gas and oil samples are selected to investigate if natural convection has the same effects in different samples. It is observed that increase in natural convection causes to reduce horizontal and vertical composition gradients. This effect is more significant in gas reservoir, as methane composition varies by more than 5.2 mol% diagonally in gas condensate sample, whereas this value is about 0.45 mol% in volatile oil sample. Lower density and higher bulk velocity in gas sample cause more disturbances in flow streams of gas mixture. Evaluation of the developed model shows that the model is reliable for reservoir studies and management programs.http://link.springer.com/article/10.1007/s13202-019-0624-yCompositional gradientDiffusion coefficientConvectionCross effectTwo dimensional
collection DOAJ
language English
format Article
sources DOAJ
author Mahboobeh Kiani
Shahriar Osfouri
Reza Azin
Seyed Ail Mousavi Dehghani
spellingShingle Mahboobeh Kiani
Shahriar Osfouri
Reza Azin
Seyed Ail Mousavi Dehghani
A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
Journal of Petroleum Exploration and Production Technology
Compositional gradient
Diffusion coefficient
Convection
Cross effect
Two dimensional
author_facet Mahboobeh Kiani
Shahriar Osfouri
Reza Azin
Seyed Ail Mousavi Dehghani
author_sort Mahboobeh Kiani
title A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
title_short A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
title_full A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
title_fullStr A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
title_full_unstemmed A comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
title_sort comprehensive model for the prediction of fluid compositional gradient in two-dimensional porous media
publisher SpringerOpen
series Journal of Petroleum Exploration and Production Technology
issn 2190-0558
2190-0566
publishDate 2019-02-01
description Abstract Compositional gradient can be described as changes in the composition of components both vertically and horizontally in a hydrocarbon reservoir. In the present work, two-dimensional compositional gradient in multi-component gas and oil mixtures is modeled. A thermodynamic model is developed based on molecular diffusion coefficients in mass diffusive flux. A combination of Sigmund and Bird correlations is considered to estimate molecular diffusion coefficients for gas mixtures. Implementing this comprehensive developed model on a gas condensate sample shows interesting differences not only in trends of component compositions but also in gradient magnitude. A real set of data from a supergiant gas condensate field is used to validate the model. It is perceived that the developed model reduces relative absolute errors to about 50%. In the next step, a comprehensive study was conducted to understand the cross effects of molecular diffusion and natural convection in gas condensate and volatile oil samples. Gas and oil samples are selected to investigate if natural convection has the same effects in different samples. It is observed that increase in natural convection causes to reduce horizontal and vertical composition gradients. This effect is more significant in gas reservoir, as methane composition varies by more than 5.2 mol% diagonally in gas condensate sample, whereas this value is about 0.45 mol% in volatile oil sample. Lower density and higher bulk velocity in gas sample cause more disturbances in flow streams of gas mixture. Evaluation of the developed model shows that the model is reliable for reservoir studies and management programs.
topic Compositional gradient
Diffusion coefficient
Convection
Cross effect
Two dimensional
url http://link.springer.com/article/10.1007/s13202-019-0624-y
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